首页> 外文会议>Intelligent Vehicles Symposium, 2003. Proceedings. IEEE >Comparison between infrared-image-based and visible-image-based approaches for pedestrian detection
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Comparison between infrared-image-based and visible-image-based approaches for pedestrian detection

机译:行人检测的基于红外图像和基于可见图像的方法之间的比较

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In order to improve the safety of night driving, automatic pedestrian detection has received more and more attraction. Since reliability is the most important issue in these systems, multi-dimensional-feature-based segmentation and classification needs to be introduced, and each axis should be efficient and be as much independent (to each other) as possible. To choose effective multi-dimensional features for infrared-image-based detection, the paper first investigates the possibilities of reusing available features for visible images by analyzing the different properties of infrared images and visible images. To take advantage of unique properties of infrared images, we propose the following novel features: special projection feature for segmentation, and two-axis pixel-distribution feature for classification. The segmentation based on new features does not depend on many assumptions and is shape-independent, thus avoiding brute-force multiple templates and multi-scale pyramid searching. The novel classification features include histogram feature and inertial feature that are independent and complimentary, thus the two-dimensional fusion-based classification significantly improves detection accuracy. These proposed features are independent from conventional pixel-array feature, and can be further fused with other general pedestrian detection features to improve simplicity, speed, and reliability.
机译:为了提高夜间驾驶的安全性,自动行人检测越来越受到人们的关注。由于可靠性是这些系统中最重要的问题,因此需要引入基于多维特征的分割和分类,并且每个轴都应该高效并且尽可能独立。为了选择有效的多维特征进行基于红外图像的检测,本文首先通过分析红外图像和可见图像的不同特性,研究了为可见图像重用可用特征的可能性。为了利用红外图像的独特属性,我们提出以下新颖功能:用于分割的特殊投影功能和用于分类的两轴像素分布功能。基于新特征的分割不取决于许多假设,并且与形状无关,因此避免了强力的多个模板和多尺度金字塔搜索。新颖的分类特征包括独立且互补的直方图特征和惯性特征,因此基于二维融合的分类显着提高了检测准确性。这些建议的功能独立于常规像素阵列功能,并且可以与其他常规行人检测功能进一步融合,以提高简单性,速度和可靠性。

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